Title :
Modular Motor/Converter System Topology With Redundancy for High-Speed, High-Power Motor Applications
Author :
Zhiguo Pan ; Bkayrat, R.A.
Author_Institution :
ABB Corp. Res. Center, Raleigh, NC, USA
Abstract :
A novel motor/converter system topology is presented, which is ideal for high-power, high-speed motor applications, especially in the case of utilizing permanent-magnet synchronous AC motors. The proposed system utilizes space-shifted, split-phase, motor stator configuration, with a modular converter topology. The stator winding configuration allows current harmonics from the different phases to cancel out each other, while maximizing the fundamental space vector. Hence, the proposed topology does not require the high-frequency pulsewidth modulation normally needed to reduce the time-domain harmonics found in the phase currents. The switching frequency of the power converters can actually be as low as the fundamental frequency, which significantly reduces the switching losses, associated electromagnetic interference mitigation, and cooling requirements. The modularity of the proposed topology also simplifies overall system design and manufacturability, and provides redundancy and inherent fault tolerance. In this paper, the system topology and control strategy are discussed. Simulation and finite-element analysis results are presented to illustrate the harmonic cancellation and other advantages of the proposed topology. Experimental results also confirm the validity of the proposed system topology.
Keywords :
fault tolerance; finite element analysis; harmonics suppression; machine windings; permanent magnet motors; switching convertors; synchronous motors; , motor stator configuration; associated electromagnetic interference mitigation; converter system topology; current harmonics; finite-element analysis; fundamental space vector maximization; harmonic cancellation; high-frequency pulsewidth modulation; high-power motor; high-speed motor; inherent fault tolerance; modular motor system topology; permanent-magnet synchronous AC motors; phase currents; power converters; space-shifted stator configuration; split-phase stator configuration; stator winding configuration; switching frequency; switching losses; time-domain harmonics; AC motors; Phase modulation; Pulse modulation; Redundancy; Space vector pulse width modulation; Stator windings; Switching frequency; Synchronous motors; Time domain analysis; Topology; AC motor drives; redundancy;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2009.2025948